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Efficient Antifungal and Flame-Retardant Properties of ZnO-TiO2-Layered Double-Nanostructures Coated on Bamboo Substrate

机译:竹基涂层ZnO-TiO2双层双纳米结构的高效抗真菌和阻燃性能

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A facile method to synthesize ZnO-TiO2-layered double-nanostructures with the average thickness of 20 μm on a bamboo substrate was proposed to improve the antifungal and flame-retardant properties. The cross-linked wurtzite ZnO nanostructures with an average thickness of approximately 0.14 μm were uniformly distributed on the anatase TiO2 surface. The energy-dispersive X-ray spectroscopy (EDS) confirmed that the ZnO-TiO2 coating on bamboo was a layered double nanostructure. During a two-month antifungal test conducted in an outdoor environment, the fungi began to grow after one week on pristine bamboo and three weeks on ZnO-bamboo and TiO2-bamboo. Furthermore, there was an infected area of 100% after four weeks for pristine bamboo and six weeks for ZnO-bamboo, while there was an infected area of 43% after eight weeks for TiO2-bamboo. By comparison, there was no visible fungal growth on ZnO-TiO2-bamboo until the end of the test. The electron spin resonance (ESR) technique has demonstrated that the reactive oxygen species (ROS) of ?O2? and ?OH were produced from the ZnO-TiO2 surface under visible light irradiation (λ > 420 nm). This large quantity of ?O2? compared to ?OH is considered to be mainly responsible for the inactivation of fungi. Additionally, the limiting oxygen index has increased from 25.6% to 30.2% after being covered with a ZnO-TiO2 coating, which revealed a significant enhancement of its flame-retardant property.
机译:提出了一种在竹基板上合成平均厚度为20μm的ZnO-TiO2层状双纳米结构的简便方法,以提高其抗真菌和阻燃性能。平均厚度约为0.14μm的交联纤锌矿ZnO纳米结构均匀分布在锐钛矿型TiO2表面上。能量色散X射线光谱(EDS)证实竹子上的ZnO-TiO2涂层是层状双纳米结构。在室外环境下进行的为期两个月的抗真菌测试中,真菌在原始竹子上生长一周后在ZnO-竹子和TiO2-竹炭上生长了三周后开始生长。此外,原始竹4周后的感染面积为100%,ZnO-竹6周后的感染面积为100%,而TiO2-竹8周后的感染面积为43%。相比之下,直到测试结束,ZnO-TiO2-竹子上都没有可见的真菌生长。电子自旋共振(ESR)技术已经证明了?O2?的活性氧(ROS)。在可见光照射下(λ> 420 nm),ZnO-TiO2的表面会产生αOH和αOH。大量的“ O2”?与?OH相比,被认为是导致真菌失活的主要原因。此外,在用ZnO-TiO2涂层覆盖后,极限氧指数已从25.6%提高到30.2%,这表明其阻燃性得到了显着提高。

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